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dc.contributor.authorAutorAltimiras Gonzalez, Francisco Javier
dc.contributor.authorAutorPávez Díaz, Leonardo Ignacio
dc.contributor.authorAutorPourreza, Alireza
dc.contributor.authorAutorYáñez Osses, Osvaldo Andrés
dc.contributor.authorAutorGonzález Rodríguez, Lisdelys
dc.contributor.authorAutorGarcía, José
dc.contributor.authorAutorGalaz, Claudio
dc.contributor.authorAutorLeiva Araos, Andrés
dc.contributor.authorAutorAllende Cid, Héctor
dc.contributor.otherCarreraFacultad de ingeniería y negocioses
dc.date.accessionedFecha ingreso2025-04-22T02:21:32Z
dc.date.availableFecha disponible2025-04-22T02:21:32Z
dc.date.issuedFecha publicación2024
dc.identifier.citationReferencia BibliográficaAgronomy, 14(3), 13 p.es
dc.identifier.uriURLhttp://repositorio.udla.cl/xmlui/handle/udla/1745
dc.description.abstractResumenIn agricultural production, it is fundamental to characterize the phenological stage of plants to ensure a good evaluation of the development, growth and health of crops. Phenological characterization allows for the early detection of nutritional deficiencies in plants that diminish the growth and productive yield and drastically affect the quality of their fruits. Currently, the phenological estimation of development in grapevine (Vitis vinifera) is carried out using four different schemes: Baillod and Baggiolini, Extended BBCH, Eichhorn and Lorenz, and Modified E-L. Phenological estimation requires the exhaustive evaluation of crops, which makes it intensive in terms of labor, personnel, and the time required for its application. In this work, we propose a new phenological classification based on transcriptional measures of certain genes to accurately estimate the stage of development of grapevine. There are several genomic information databases for Vitis vinifera, and the function of thousands of their genes has been widely characterized. The application of advanced molecular biology, including the massive parallel sequencing of RNA (RNA-seq), and the handling of large volumes of data provide state-of-the-art tools for the determination of phenological stages, on a global scale, of the molecular functions and processes of plants. With this aim, we applied a bioinformatic pipeline for the high-throughput quantification of RNA-seq datasets and further analysis of gene ontology terms. We identified differentially expressed genes in several datasets, and then, we associated them with the corresponding phenological stage of development. Differentially expressed genes were classified using count-based expression analysis and clustering and annotated using gene ontology data. This work contributes to the use of transcriptome data and gene expression analysis for the classification of development in plants, with a wide range of industrial applications in agriculture.es
dc.language.isoLenguaje ISOen_USes
dc.publisherEditorMDPIes
dc.subjectPalabras ClavesPhenologyes
dc.subjectPalabras ClavesGene expressiones
dc.subjectPalabras ClavesVitis viniferaes
dc.subjectPalabras ClavesRNA sequencinges
dc.titleTítuloTranscriptome data analysis applied to grapevine growth stage identificationes
dc.typeTipo de DocumentoArtículoes
dc.identifier.doidc.identifier.doi10.3390/agronomy14030613
dc.udla.privacidaddc.udla.privacidadDocumento públicoes


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